首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Enhancing methane production from U. lactuca using combined anaerobically digested sludge (ADS) and rumen fluid pre-treatment and the effect on the solubilization of microbial community structures
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Enhancing methane production from U. lactuca using combined anaerobically digested sludge (ADS) and rumen fluid pre-treatment and the effect on the solubilization of microbial community structures

机译:使用组合的厌氧消化的污泥(ADS)和瘤胃流体预处理和对微生物群落结构溶解的影响,从U.Lactuca增强甲烷生产。

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Methane production by the anaerobic digestion of seaweed is restricted by the slow degradation caused by the influence of the rigid algal cell wall. At the present time, there has been no study focusing on the anaerobic digestion of U. lactuca by co-fermentation and pre-treatment with rumen fluid. Rumen fluid can favor methane production from algal biomass by utilizing the diversity and quantity of bacterial and archaeal communities in the rumen fluid. This research presents a novel method based on combined ADS and rumen fluid pre-treatment to improve the production of methane from seaweed. Biochemical methane potential (BMP) tests were performed to investigate the biogas production using combined ADS and rumen fluid pre-treatment at varied inoculum ratios on the performance of methane production from U. lactuca biomass. Compared to the control (no rumen fluid pre-treatment), the highest BMP yields of U. lactuca increased from 3%, 27.5% and 39.5% to 31.1%, 73% and 85.6%, respectively, for three different types of treatment. Microbial community analysis revealed that the Methanobrevibacter species, known to accept electrons to form methane, were only detected when rumen fluid was added. Together with the significant increase in species of Methanoculleus, Methanospirillum and Methanosaeta, rumen fluid improved the fermentation and degradation of the microalgae biomass not only by pre-treatment to foster cell-wall degradation but also by relying on methane production within itself during anaerobic processes. Batch experiments further indicated that rumen fluid applied to the co-fermentation and pre-treatment could increase the economic value and hold promise for enhancing biogas production from different seaweed species.
机译:通过刚性藻类细胞壁的影响引起的缓慢降解,甲烷产生的甲烷生产受到刚性藻壁的影响引起的缓慢降解。目前,通过共发酵和用瘤胃液预处理,尚未研究U.Lactuca的厌氧消化。通过利用瘤胃液中的细菌和古群落的多样性和数量,瘤胃流体可以从藻类生物量开始甲烷生产。本研究提出了一种基于组合ADS和瘤胃流体预处理的新方法,以改善海藻的甲烷的生产。进行生化甲烷电位(BMP)测试以研究使用组合ADS和瘤胃流体在各种接种比率上进行的沼气流体对甲烷生物量的甲烷生产性能进行了多种的侵蚀性。与对照(没有瘤胃液预处理)相比,U.Lactiuca的最高BMP产量分别从3%,27.5%和39.5%增加到31.1%,73%和85.6%,用于三种不同类型的治疗。微生物群落分析显示,仅在加入瘤胃流体时,仅检测到甲氧基再杆菌物种以形成甲烷。随着甲蛋白,甲烷季度和甲蛋白酶,瘤胃流体的显着增加,瘤胃流体不仅通过预处理而改善了微藻生物质的发酵和降解,以促进细胞壁降解,而且还通过在厌氧过程中依赖于本身内的甲烷产量。分批实验进一步表明,应用于共发酵和预处理的瘤胃流体可以提高经济价值,并持有增强来自不同海藻物种的沼气生产的承诺。

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